📚 Master A-Level Physics D.C. Circuits
Complete Guide with Exam Secrets (CIE 9702)
1. Core Concepts
e.m.f. vs. Potential Difference
| Term | Definition | Formula | Energy |
|---|---|---|---|
| e.m.f. (E) | Total energy per unit charge from source | E = Energy/Charge | Chemical → Electrical |
| p.d. (V) | Energy per unit charge transferred | V = Work/Charge | Electrical → Heat/Light |
Internal Resistance
Key point: Terminal p.d. < e.m.f. when current flows.
Kirchhoff's Laws
Resistor Combinations
2. Practical Circuits
Potential Dividers
Used for: Variable voltage supplies, sensor circuits.
Potentiometers
Null method – compares e.m.f.s without drawing current.
Sensor Circuits
| Sensor | Resistance Change | Application |
|---|---|---|
| Thermistor (NTC) | ↓ as temperature ↑ | Temperature alarms |
| LDR | ↓ as light intensity ↑ | Light sensors |
3. Worked Examples
Example 1: Internal Resistance
Problem: Battery (e.m.f. 9.0V) connected to 4.0Ω resistor. Power = 8.0W. Find r.
Solution:
1. P = I²R → 8.0 = I² × 4.0 → I = √2 = 1.414A
2. V = IR = 1.414 × 4.0 = 5.656V
3. V = E - Ir → 5.656 = 9.0 - 1.414r
4. r = 2.37Ω
Example 2: Potentiometer
Problem: Balance length = 41.0cm for 1.23V. What series R gives balance at 50.0cm?
Solution:
1. Initial p.d./length = 1.23/0.410 = 3.00 V/m
2. Required = 1.23/0.500 = 2.46 V/m
3. (3.0 × 4.0)/(4.0 + Rs) = 2.46
4. Rs = 0.88Ω
4. Common Pitfalls
Signs in Kirchhoff's 2nd Law: Most common error! IR drop is negative if traversing with current.
Maximum Power: External R gets max power when R = internal resistance r.
V = E - Ir gives straight line: intercept = E, gradient = -r
📋 Quick Reference
📚 Based on CIE A-Level Physics 9702 Syllabus
CIE A-Level Physics 9702: Complete D.C. Circuits Guide
Learning Objectives
Electromotive Force (e.m.f.) - Formal Definition
e.m.f. (E) = The total energy transferred per unit charge from a source in driving charge around a complete circuit.
Physical meaning: When 1 coulomb of charge passes through the source, it gains E joules of electrical energy from chemical/other forms.
Potential Difference (p.d.) - Formal Definition
p.d. (V) = The energy transferred per unit charge from electrical to other forms when charge passes between two points.
Physical meaning: When 1 coulomb passes between two points, it transfers V joules to heat/light/other forms.
| Aspect | e.m.f. (E) | Potential Difference (V) |
|---|---|---|
| Definition | Energy supplied per unit charge by source | Energy transferred per unit charge between two points |
| Circuit Role | Cause of current flow (driving force) | Effect of current flow (energy use) |
| Measurement | Measured when source supplies no current (open circuit) | Measured when current is flowing |
| Energy Change | Non-electrical → Electrical | Electrical → Other forms |
| Symbol in Equations | E or ε | V or ΔV |
Exam Application: Internal Resistance
Syllabus requirement: "Understand the effects of the internal resistance of a source of e.m.f. on the terminal potential difference"
Where:
V = terminal p.d. (voltage across source terminals)
E = e.m.f. of source
I = current in circuit
r = internal resistance
Learning Objectives
Kirchhoff's First Law (Junction Rule)
Statement: The sum of currents entering any junction equals the sum of currents leaving that junction.
Conservation Basis: Charge cannot be created or destroyed at a junction. This is a direct consequence of conservation of charge.
Mathematical form: Taking currents entering as positive and leaving as negative: ΣI = 0 at any junction.
Kirchhoff's Second Law (Loop Rule)
Statement: The sum of e.m.f.s in any closed loop equals the sum of potential differences in that loop.
Conservation Basis: Energy supplied by sources equals energy dissipated in components. This is a direct consequence of conservation of energy.
Sign Convention Critical: Choose consistent direction for each loop. E.m.f. is positive if traversed from - to + terminal. IR drop is negative if traversed in same direction as current.
Derivation: Resistors in Series (Syllabus Requirement)
Given: Resistors R₁, R₂, R₃ in series with current I and total p.d. V
Derivation: Resistors in Parallel (Syllabus Requirement)
Given: Resistors R₁, R₂, R₃ in parallel with total current I and p.d. V across each
Special case for two resistors: R_eq = (R₁R₂)/(R₁ + R₂)
Circuit Problem Solving Strategy (Syllabus Requirement)
Step-by-step approach for complex circuits:
Example circuit types to practice:
- Multiple battery circuits
- Bridge circuits
- Networks with mixed series-parallel combinations
- Circuits with internal resistance
Learning Objectives
Potential Divider Principle
Definition: A circuit that divides the input voltage into smaller output voltages using resistors.
Derivation from Ohm's Law:
Key features:
- Output is always less than input
- Output proportional to resistance ratio
- Can provide variable output if one resistor is variable
Potentiometer Principle
Definition: A null method device for accurately comparing e.m.f.s or measuring p.d.s without drawing current from the unknown source.
Why it's accurate (null method):
Requirements for accurate potentiometer:
- Uniform resistance wire (constant resistance per unit length)
- Driver cell e.m.f. > unknown e.m.f.
- Sensitive galvanometer
- Low resistance connecting wires
Galvanometer in Null Methods
Syllabus requirement: "Understand the use of a galvanometer in null methods"
Galvanometer characteristics:
- Very sensitive current detector
- Can detect current in either direction
- Shows zero when p.d. across it is zero
- Does not need calibration when used in null method
Advantages of null method:
- No current drawn from unknown source during measurement
- Internal resistance doesn't affect measurement
- High accuracy as depends on length ratio
- Galvanometer sensitivity more important than calibration
Thermistors in Potential Dividers
Light-Dependent Resistors (LDRs)
Designing Sensor Circuits (Syllabus Requirement)
Step-by-step design process:
Example exam question structure:
- "The resistance of the thermistor is 2000Ω at 20°C and 500Ω at 60°C. Design a circuit to give 0V output at 20°C and 5V output at 60°C."
- "The LDR has resistance 100kΩ in dark and 1kΩ in light. Choose a fixed resistor to give maximum voltage change."
Syllabus Coverage Complete
All learning objectives from Section 10 (D.C. Circuits) of CIE A-Level Physics 9702 syllabus addressed
Paper 1: Multiple choice applications | Paper 2: Structured questions | Paper 4: Data analysis & planning
Circuit Symbols: Interpretation and Function
Cell
Interpretation: A single electrical energy source
Function: Supplies electrical energy to a circuit
Battery of cells
Interpretation: Two or more cells connected together
Function: Provides a higher potential difference
Power supply
Interpretation: An external electrical energy source
Function: Supplies electrical energy to a circuit
a.c. power supply
Interpretation: An alternating current source
Function: Supplies alternating voltage and current
Earth
Interpretation: Zero-potential reference point
Function: Provides a common reference potential
Switch
Interpretation: A control device
Function: Opens or closes a circuit
Junction of conductors
Interpretation: A connection point of wires
Function: Allows current to split or combine
Lamp
Interpretation: A light-producing component
Function: Converts electrical energy to light
Heater
Interpretation: A heating component
Function: Converts electrical energy to heat
Motor (M)
Interpretation: An electric motor
Function: Converts electrical energy to kinetic energy
Generator (G)
Interpretation: An electrical generator
Function: Converts kinetic energy to electrical energy
Electric bell
Interpretation: A sound-producing device
Function: Produces sound when current flows
Buzzer
Interpretation: An audible signalling device
Function: Produces sound when current flows
Loudspeaker
Interpretation: A sound output device
Function: Converts electrical signals into sound
Microphone
Interpretation: A sound input device
Function: Converts sound into electrical signals
Fixed resistor
Interpretation: A resistor with constant resistance
Function: Limits current in a circuit
Variable resistor
Interpretation: An adjustable resistor
Function: Used to vary current or potential difference
Potentiometer
Interpretation: A variable resistor with three terminals
Function: Used as a potential divider
Thermistor
Interpretation: A temperature-dependent resistor
Function: Changes resistance with temperature
Light-dependent resistor (LDR)
Interpretation: A light-sensitive resistor
Function: Changes resistance with light intensity
Ammeter (A)
Interpretation: A current-measuring instrument
Function: Measures electric current
Voltmeter (V)
Interpretation: A potential difference measuring instrument
Function: Measures voltage across components
Galvanometer
Interpretation: A sensitive current detector
Function: Detects small electric currents
Oscilloscope
Interpretation: A voltage display instrument
Function: Displays voltage variation with time
Diode
Interpretation: A one-directional device
Function: Allows current to flow in one direction only
Light-emitting diode (LED)
Interpretation: A light-producing diode
Function: Emits light when current flows
Capacitor
Interpretation: A charge-storing component
Function: Stores electrical charge